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This is how the question is asked 11. (30) The products produced from the ideal combustion of Acetylene gas (C2H2) with Oxygen produces the follow

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11. (30) The products produced from the ideal combustion of Acetylene gas (C2H2) with Oxygen produces the follow balanced formula. 2 H_C2g) + 5 029) 4CO2(g) + 2 H2009) Assuming complete combustion and the temperature of the resulting mixture will be at 500 K. a. Calculate the heat capacity at constant pressure of the resulting mixture. Report values in J/(mol K): b. Calculate the thermal energy required to bring one mole of this mixture from 500K to 600K in J Now if there were less oxygen and complete combustion did not occur, assume the balanced formula would be the following: 2 H_C2(g) + 2 02(g) 2 CO (9) + 2 H2O(g) + 2C(s) 9 c. Calculate the heat capacity of this new mixture. (Note, assume values for Carbon in J/mol K are a: 21.175; b: -0.812x10- and c: 0.44x10). How did this change your calculations

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